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锥体神经元中电导的空间分隔与功能影响

Spatial compartmentalization and functional impact of conductance in pyramidal neurons.

作者信息

Williams Stephen R

机构信息

Medical Research Council Laboratory of Molecular Biology, Hills Road, Cambridge CB2 2QH, UK.

出版信息

Nat Neurosci. 2004 Sep;7(9):961-7. doi: 10.1038/nn1305. Epub 2004 Aug 22.

Abstract

Dendritic spikes signal synaptic integration at remote apical dendritic sites in neocortical pyramidal neurons in vitro. Do dendritic spikes have a salient signaling role under in vivo conditions, where neocortical pyramidal neurons are bombarded with synaptic input? In the present study, levels of synaptic conductance apparent during active network states in vivo were emulated in vitro. Pronounced enhancement of somatic or apical dendritic conductance was spatially compartmentalized and 'visible' over a dendritic length ( approximately 200 microm) on the order of half the voltage length constant, as predicted by passive cable models. The spatial compartmentalization of conductance allowed independent subthreshold synaptic integration at axo-somatic and apical dendritic sites. Furthermore, spikes generated at distal apical dendritic sites efficiently propagated to the axon to initiate action potentials under high synaptic conductance states. The dendritic arborization and voltage-activated channel complement of rat neocortical pyramidal neurons are therefore optimized to allow distributed processing under realistic conductance states.

摘要

树突棘信号在体外新皮层锥体神经元的远端顶端树突部位进行突触整合。在体内条件下,新皮层锥体神经元受到大量突触输入的轰击,树突棘是否具有显著的信号传导作用?在本研究中,模拟了体内活跃网络状态期间明显的突触电导水平。正如被动电缆模型所预测的那样,体细胞或顶端树突电导的显著增强在空间上是分隔的,并且在大约为电压长度常数一半的树突长度(约200微米)上是“可见”的。电导的空间分隔允许在轴突 - 体细胞和顶端树突部位进行独立的阈下突触整合。此外,在高突触电导状态下,在远端顶端树突部位产生的尖峰有效地传播到轴突以引发动作电位。因此,大鼠新皮层锥体神经元的树突分支和电压激活通道补充经过优化,以允许在实际电导状态下进行分布式处理。

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